Interhemispheric transfer of visual information in humans: spatial characteristics.
- 1 March 1987
- journal article
- research article
- Published by Wiley in The Journal of Physiology
- Vol. 384 (1) , 633-647
- https://doi.org/10.1113/jphysiol.1987.sp016474
Abstract
1. The problem of the interhemispheric transfer of visual information in humans has been approached psychophysically, making use of a visual discrimination task that shows a clear left field advantage and is subject to the phenomenon of perceptual learning. 2. For this task (discrimination of complex gratings differing only by the relative spatial phase of their harmonic components) there is a left field advantage and a lack of interhemispheric transfer of learning effects at all spatial frequencies tested for stimuli removed at least 5 deg from either side of the vertical meridian. 3. For stimuli close to the vertical meridian, the left field advantage disappears and there is a complete transfer of learning effects, provided the fundamental spatial frequency is 2 cycles/deg or lower. 4. At higher spatial frequencies the left field advantage is maintained and the learning effects do not transfer from one visual hemifield to the other, even at +/‐ 0.5 deg from the vertical meridian, unless the contrast is very high. 5. The transfer of learning effects obtained for spatial frequencies of 2 cycles/deg or lower is peculiar to regions placed close to the vertical meridian and symmetrically located on either side of it. No transfer is obtained between non‐overlapping regions on the same side of the vertical meridian. 6. These findings are consistent with an interhemispheric transfer of visual information, preferential for low spatial frequencies and high contrasts, in agreement with that found for callosal transfer in the cat (Berardi, Bisti & Maffei, 1987).This publication has 19 references indexed in Scilit:
- A QUALITATIVE LIMITATION ON VISUAL TRANSFER VIA THE ANTERIOR COMMISSURE ; EVIDENCE FROM A CASE OF CALLOSAL AGENESISBrain, 1985
- Right-Hemisphere Superiority in the Discrimination of Spatial PhasePerception, 1984
- Learning in grating waveform discrimination: Specificity for orientation and spatial frequencyVision Research, 1981
- Perceptual learning specific for orientation and spatial frequencyNature, 1980
- Sensitivity to spatial phaseVision Research, 1980
- Demonstration of bilateral projection of the central retina of the monkey with horseradish peroxidase neuronographyJournal of Comparative Neurology, 1977
- The naso‐temporal division of the monkey's retinaJournal of Comparative Neurology, 1973
- Binocular depth perception and the corpus callosumVision Research, 1970
- Binocular depth perception and the optic chiasmVision Research, 1970
- Binocularly Driven Neurons in Visual Cortex of Split-Chiasm CatsScience, 1968